Logo image
Tri-functional metasurface enhanced with a physically unclonable function
Journal article   Peer reviewed

Tri-functional metasurface enhanced with a physically unclonable function

Soroosh Daqiqeh Rezaei, Zhaogang Dong, Hao Wang, Jiahui Xu, Hongtao Wang, Mohammad Tavakkoli Yaraki, Ken Choon Hwa Goh, Wang Zhang, Shaban Reza Ghorbani, Xiaogang Liu, …
Materials today (Kidlington, England), Vol.62, pp.51-61
01/2023

Abstract

Hologram Luminescence enhancement Optical anti-counterfeiting Structural color Upconversion enhancement
This work demonstrates the simultaneous control of three separate optical responses, i.e., phase, amplitude, and luminescence, using anisotropic gap-plasmon metasurfaces. Due to the incorporated geometric anisotropy, the designed structure exhibits distinct responses under x- and y-polarized light, revealing either a color image, or a holographic projection in the far-field as well as a luminescence image when pumped with NIR laser. Inserting upconversion nanoparticles (UCNPs) into the dielectric gaps of the structures, creates a unique “fingerprint”, achieving a physically unclonable function (PUF) layer. Our triple-mode metasurface paves the way towards highly secure and easy-to-authenticate metasurface-driven optically variable devices (mOVDs). [Display omitted] In optical anti-counterfeiting, several distinct optically variable devices (OVDs) are often concurrently employed to compensate for the insufficient security level of constituent OVDs. Alternatively, metasurfaces that exhibit multiple optical responses effectively combine multiple OVDs into one, thus significantly enhancing their security and hindering fraudulent replication. This work demonstrates the simultaneous control of three separate optical responses, i.e., phase, amplitude, and luminescence, using anisotropic gap-plasmon metasurfaces. Due to the incorporated geometric anisotropy, the designed structure exhibits distinct responses under x- and y-polarized light, revealing either a color image, or a holographic projection in the far-field. Furthermore, inserting upconversion nanoparticles (UCNPs) into the dielectric gaps of the structures, the designed metasurface is able to generate a third luminescent image upon illumination with the near-infrared light. The stochastic distribution of the UCNPs constitutes a unique “fingerprint”, achieving a physically unclonable function (PUF) layer. Crucially, our triple-mode metasurface requires only readily attainable equipment such as a macro-lens/camera and a laser pointer to read most of the channels, thus paving the way towards highly secure and easy-to-authenticate metasurface-driven OVDs (mOVDs).

Metrics

1 Record Views

Details

Logo image